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Updated: Mar 31, 2026

Super-resolution Imaging of Proteus mirabilis Biofilm by Expansion Microscopy
Published on: July 18, 2025
Novel Insights into the Proteus mirabilis Crystalline Biofilm Using Real-Time Imaging
Sandra A Wilks1, Mandy J Fader2, C William Keevil3
1Centre for Biological Sciences, Faculty of Natural and Environmental Sciences, University of Southampton, Southampton, Hampshire, United Kingdom; Faculty of Health Sciences, University of Southampton, Southampton, Hampshire, United Kingdom.
Abstract:
The long-term use of indwelling catheters results in a high risk from urinary tract infections (UTI) and blockage. Blockages often occur from crystalline deposits, formed as the pH rises due to the action of urease-producing bacteria; the most commonly found species being Proteus mirabilis. These crystalline biofilms have been found to develop on all catheter materials with P. mirabilis attaching to all surfaces and forming encrustations. Previous studies have mainly relied on electron microscopy to describe this process but there remains a lack of understanding into the stages of biofilm formation. Using an advanced light microscopy technique, episcopic differential interference contrast (EDIC) microscopy combined with epifluorescence (EF), we describe a non-destructive, non-contact, real-time imaging method used to track all stages of biofilm development from initial single cell attachment to complex crystalline biofilm formation. Using a simple six-well plate system, attachment of P. mirabilis (in artificial urine) to sections of silicone and hydrogel latex catheters was tracked over time (up to 24 days). Using EDIC and EF we show how initial attachment occurred in less than 1 h following exposure to P. mirabilis. This was rapidly followed by an accumulation of an additional material (indicated to be carbohydrate based using lectin staining) and the presence of highly elongated, motile cells. After 24 h exposure, a layer developed above this conditioning film and within 4 days the entire surface (of both catheter materials) was covered with diffuse crystalline deposits with defined crystals embedded. Using three-dimensional image reconstruction software, cells of P. mirabilis were seen covering the crystal surfaces. EDIC microscopy could resolve these four components of the complex crystalline biofilm and the close relationship between P. mirabilis and the crystals. This real-time imaging technique permits study of this complex biofilm development with no risk of artefacts due to sample manipulation. A full understanding of the stages and components involved in crystalline encrustation formation will aid in the development of new protocols to manage and ultimately prevent catheter blockage.
Insights
Long-term catheter use risks urinary tract infections (UTI) and blockage from crystalline deposits. New microscopy reveals Proteus mirabilis biofilm stages, aiding UTI prevention strategies.
Area of Science:
- Biomedical Engineering
- Microbiology
- Medical Device Technology
Background:
- Indwelling catheters pose risks of urinary tract infections (UTI) and blockage.
- Blockages result from crystalline deposits caused by urease-producing bacteria, notably Proteus mirabilis.
- Previous research on biofilm formation lacked detailed, real-time insights.
Purpose of the Study:
- To develop and utilize a non-destructive, real-time imaging method to visualize all stages of crystalline biofilm formation on catheter materials.
- To understand the sequential development of Proteus mirabilis biofilms and their encrustations.
Main Methods:
- Employed episcopic differential interference contrast (EDIC) microscopy and epifluorescence (EF) microscopy for advanced light imaging.
- Tracked P. mirabilis attachment and biofilm development on silicone and hydrogel latex catheter sections in artificial urine over 24 days.
- Utilized lectin staining for carbohydrate identification and 3D image reconstruction software.
Main Results:
- Initial P. mirabilis attachment occurred within 1 hour.
- Biofilm development included carbohydrate-based material accumulation and elongated cell formation.
- Extensive crystalline deposits covered catheter surfaces within 4 days, with P. mirabilis observed on crystal surfaces.
Conclusions:
- EDIC and EF microscopy provide a detailed, artifact-free view of crystalline biofilm development stages.
- Understanding the complex relationship between P. mirabilis and crystal formation is crucial.
- This technique can inform new strategies to prevent catheter blockage and associated UTIs.

